Accurate Leakage Speculation for Quantum Error Correction
Chaithanya Naik Mude, Swamit Tannu
Abstract
Quantum Error Correction (QEC) protects qubits against bit-and phase-flip errors in the |0⟩ /|1⟩ subspace, but physical qubits can also leak into higher energy levels (e.g., |2⟩). Leakage is especially harmful, as it corrupts all subsequent syndrome measurements and can spread to neighboring qubits. Detecting leakage on data qubits is particularly challenging, since they are never measured directly during QEC cycles. Prior work, such as eraser [43], addresses this by inferring leakage from syndrome patterns using a fixed heuristic. However, this approach often misclassifies benign syndromes, triggering excessive leakage-reduction circuits (LRCs). Because LRCs are themselves noisy and slow, these false triggers lengthen QEC cycles and inflate logical error rates.
We propose gladiator, a general and adaptable leakage speculation framework that works across surface code, color code, and qLDPC codes. Offline, gladiator builds a code-aware errorpropagation graph calibrated to device data. Online, it classifies each syndrome in a few nanoseconds and schedules LRC only when the observed pattern is provably leakage-dominated. This precise speculation eliminates up to 3× (and on average 2×) unnecessary LRCs, shortens QEC cycles, and suppresses false positives at their source. Evaluated on standard fault-tolerant benchmarks, gladiator delivers 1.7×-3.9× speedups and 16% reduction in logical error rate, advancing the efficiency of fault-tolerant quantum computing.
• Hardware → Quantum error correction and fault tolerance.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 98b6b31e-e4bf-4e6a-baff-ef9a7850a663Builds on5
- Scaling Superconducting Quantum Computers with Chiplet ArchitecturesKaitlin N. Smith, Gokul Subramanian Ravi, Jonathan M. Baker, Frederic T. ChongMICRO 2022 · 56 citations
- Codesign of quantum error-correcting codes and modular chiplets in the presence of defectsSophia Fuhui Lin, Joshua Viszlai, Kaitlin N. Smith, Gokul Subramanian Ravi et al.ASPLOS 2024 · 17 citations
- ERASER: Towards Adaptive Leakage Suppression for Fault-Tolerant Quantum ComputingSuhas Vittal, Poulami Das, Moinuddin K. QureshiMICRO 2023 · 12 citations
- Synchronization for Fault-Tolerant Quantum ComputersSatvik Maurya, Swamit TannuISCA 2025 · 4 citations
- Efficient and Scalable Architectures for Multi-level Superconducting Qubit ReadoutChaithanya Naik Mude, Satvik Maurya, Benjamin Lienhard, Swamit TannuDAC 2025 · 2 citations
Related papers
- LILLIPUT: a lightweight low-latency lookup-table decoder for near-term Quantum error correctionPoulami Das, Aditya Locharla, Cody JonesASPLOS 2022 · 51 citations
- A synthesis framework for stitching surface code with superconducting quantum devicesAnbang Wu, Gushu Li, Hezi Zhang, Gian Giacomo Guerreschi et al.ISCA 2022 · 21 citations
- A Case for Elastic Quantum Error Correction DecodersSatvik Maurya, Abtin Molavi, Aws Albarghouthi, Swamit TannuEuroSys 2026
- AlphaSyndrome: Tackling the Syndrome Measurement Circuit Scheduling Problem for QEC CodesYuhao Liu, Shuohao Ping, Junyu Zhou, Ethan Decker et al.ASPLOS 2026 · 11 citations
- Astrea: Accurate Quantum Error-Decoding via Practical Minimum-Weight Perfect-MatchingSuhas Vittal, Poulami Das, Moinuddin K. QureshiISCA 2023 · 47 citations
